HCAIOct 31, 2025

Reconstructing Unseen Sentences from Speech-related Biosignals for Open-vocabulary Neural Communication

arXiv:2510.27247v1h-index: 9IEEE transactions on neural systems and rehabilitation engineering
Originality Incremental advance
AI Analysis

It addresses the need for personalized and adaptive communication and rehabilitation solutions for patients, representing an incremental advance in brain-to-speech systems.

This study tackled the problem of enabling open-vocabulary neural communication by reconstructing unseen sentences from speech-related biosignals, achieving feasibility in sentence-level speech synthesis using EEG and EMG signals.

Brain-to-speech (BTS) systems represent a groundbreaking approach to human communication by enabling the direct transformation of neural activity into linguistic expressions. While recent non-invasive BTS studies have largely focused on decoding predefined words or sentences, achieving open-vocabulary neural communication comparable to natural human interaction requires decoding unconstrained speech. Additionally, effectively integrating diverse signals derived from speech is crucial for developing personalized and adaptive neural communication and rehabilitation solutions for patients. This study investigates the potential of speech synthesis for previously unseen sentences across various speech modes by leveraging phoneme-level information extracted from high-density electroencephalography (EEG) signals, both independently and in conjunction with electromyography (EMG) signals. Furthermore, we examine the properties affecting phoneme decoding accuracy during sentence reconstruction and offer neurophysiological insights to further enhance EEG decoding for more effective neural communication solutions. Our findings underscore the feasibility of biosignal-based sentence-level speech synthesis for reconstructing unseen sentences, highlighting a significant step toward developing open-vocabulary neural communication systems adapted to diverse patient needs and conditions. Additionally, this study provides meaningful insights into the development of communication and rehabilitation solutions utilizing EEG-based decoding technologies.

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